cd36 receptor Search Results


94
MedChemExpress lipid uptake receptor cd36
Preparation and anti‐atherosclerotic mechanisms of the CuPB@HA nanozyme. (A) Synthesis procedure of CuPB@HA. PB nanoparticles were prepared through a PVP/HCl‐assisted thermal reaction using K 3 [Fe(CN) 6 ] as the precursor, followed by Cu incorporation to obtain CuPB and subsequent HA functionalization to form CuPB@HA. (B) Therapeutic mechanisms. Systemically administered CuPB@HA selectively targets lesional CD44 + macrophages. Upon internalization, it synergistically remodels the plaque microenvironment by scavenging ROS to promote a shift toward an anti‐inflammatory macrophage phenotype and improving macrophage lipid‐handling profiles by downregulating <t>CD36</t> and upregulating ABCA1/ABCG1‐related cholesterol transport mediators, thereby attenuating foam‐cell lipid accumulation. Some elements in the image were sourced from BioRender ( https://app.biorender.com/illustrations/69c95a7d8bdf29a2ebf6bea4 ).
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Proteintech cd36
Preparation and anti‐atherosclerotic mechanisms of the CuPB@HA nanozyme. (A) Synthesis procedure of CuPB@HA. PB nanoparticles were prepared through a PVP/HCl‐assisted thermal reaction using K 3 [Fe(CN) 6 ] as the precursor, followed by Cu incorporation to obtain CuPB and subsequent HA functionalization to form CuPB@HA. (B) Therapeutic mechanisms. Systemically administered CuPB@HA selectively targets lesional CD44 + macrophages. Upon internalization, it synergistically remodels the plaque microenvironment by scavenging ROS to promote a shift toward an anti‐inflammatory macrophage phenotype and improving macrophage lipid‐handling profiles by downregulating <t>CD36</t> and upregulating ABCA1/ABCG1‐related cholesterol transport mediators, thereby attenuating foam‐cell lipid accumulation. Some elements in the image were sourced from BioRender ( https://app.biorender.com/illustrations/69c95a7d8bdf29a2ebf6bea4 ).
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MedChemExpress compounds recombinant cd36 protein
Preparation and anti‐atherosclerotic mechanisms of the CuPB@HA nanozyme. (A) Synthesis procedure of CuPB@HA. PB nanoparticles were prepared through a PVP/HCl‐assisted thermal reaction using K 3 [Fe(CN) 6 ] as the precursor, followed by Cu incorporation to obtain CuPB and subsequent HA functionalization to form CuPB@HA. (B) Therapeutic mechanisms. Systemically administered CuPB@HA selectively targets lesional CD44 + macrophages. Upon internalization, it synergistically remodels the plaque microenvironment by scavenging ROS to promote a shift toward an anti‐inflammatory macrophage phenotype and improving macrophage lipid‐handling profiles by downregulating <t>CD36</t> and upregulating ABCA1/ABCG1‐related cholesterol transport mediators, thereby attenuating foam‐cell lipid accumulation. Some elements in the image were sourced from BioRender ( https://app.biorender.com/illustrations/69c95a7d8bdf29a2ebf6bea4 ).
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ProSci Incorporated anti cd36 prosci
Preparation and anti‐atherosclerotic mechanisms of the CuPB@HA nanozyme. (A) Synthesis procedure of CuPB@HA. PB nanoparticles were prepared through a PVP/HCl‐assisted thermal reaction using K 3 [Fe(CN) 6 ] as the precursor, followed by Cu incorporation to obtain CuPB and subsequent HA functionalization to form CuPB@HA. (B) Therapeutic mechanisms. Systemically administered CuPB@HA selectively targets lesional CD44 + macrophages. Upon internalization, it synergistically remodels the plaque microenvironment by scavenging ROS to promote a shift toward an anti‐inflammatory macrophage phenotype and improving macrophage lipid‐handling profiles by downregulating <t>CD36</t> and upregulating ABCA1/ABCG1‐related cholesterol transport mediators, thereby attenuating foam‐cell lipid accumulation. Some elements in the image were sourced from BioRender ( https://app.biorender.com/illustrations/69c95a7d8bdf29a2ebf6bea4 ).
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ProSci Incorporated antihuman sr b1 rabbit polyclonal antibody
Comparison of mRNA expression in paranasal sinus mucosa from the controls, and CRSsNP and CRSwNP patients as detected by RT-PCR. ( a ) scavenger receptor class B type 1 <t>(SR-B1)</t> and ( b ) lectin-like oxidized LDL receptor-1 (LOX-1) mRNA levels were quantitatively normalized to the glyceraldehyde 3-phosphate dehydrogenase (GAPDH) mRNA levels. Center lines: median values. Boxes: interquartile ranges. Error bars: overall ranges. NS: not significant.
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MedChemExpress cd36 hy p81793 medchemexpress
Comparison of mRNA expression in paranasal sinus mucosa from the controls, and CRSsNP and CRSwNP patients as detected by RT-PCR. ( a ) scavenger receptor class B type 1 <t>(SR-B1)</t> and ( b ) lectin-like oxidized LDL receptor-1 (LOX-1) mRNA levels were quantitatively normalized to the glyceraldehyde 3-phosphate dehydrogenase (GAPDH) mRNA levels. Center lines: median values. Boxes: interquartile ranges. Error bars: overall ranges. NS: not significant.
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Rockland Immunochemicals non fat dry milk b5001
Comparison of mRNA expression in paranasal sinus mucosa from the controls, and CRSsNP and CRSwNP patients as detected by RT-PCR. ( a ) scavenger receptor class B type 1 <t>(SR-B1)</t> and ( b ) lectin-like oxidized LDL receptor-1 (LOX-1) mRNA levels were quantitatively normalized to the glyceraldehyde 3-phosphate dehydrogenase (GAPDH) mRNA levels. Center lines: median values. Boxes: interquartile ranges. Error bars: overall ranges. NS: not significant.
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Boster Bio immunostaining for abca1
(A) <t>ABCA1</t> protein expression in hepatocytes and peritoneal macrophages determined by flow cytometry. (B) SR-B1 protein expression in hepatocytes and peritoneal macrophages determined by flow cytometry. Data are presented as the means ± SEM, (n=6 in each group). # P<0.05, * P<0.01, ## P<0.001, vs. control group; ** P<0.01, *** P<0. 05, **** P<0. 001, vs. AS group (ANOVA). ABCA1, adenosine triphosphate binding <t>cassette</t> <t>transporter</t> A1; SR-B1, scavenger receptor class B type I; AS, atherosclerosis.
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Bachem scavenger receptor, cd36
(A) <t>ABCA1</t> protein expression in hepatocytes and peritoneal macrophages determined by flow cytometry. (B) SR-B1 protein expression in hepatocytes and peritoneal macrophages determined by flow cytometry. Data are presented as the means ± SEM, (n=6 in each group). # P<0.05, * P<0.01, ## P<0.001, vs. control group; ** P<0.01, *** P<0. 05, **** P<0. 001, vs. AS group (ANOVA). ABCA1, adenosine triphosphate binding <t>cassette</t> <t>transporter</t> A1; SR-B1, scavenger receptor class B type I; AS, atherosclerosis.
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Allelix Biopharmaceuticals Inc cd36 cell surface receptor
(A) <t>ABCA1</t> protein expression in hepatocytes and peritoneal macrophages determined by flow cytometry. (B) SR-B1 protein expression in hepatocytes and peritoneal macrophages determined by flow cytometry. Data are presented as the means ± SEM, (n=6 in each group). # P<0.05, * P<0.01, ## P<0.001, vs. control group; ** P<0.01, *** P<0. 05, **** P<0. 001, vs. AS group (ANOVA). ABCA1, adenosine triphosphate binding <t>cassette</t> <t>transporter</t> A1; SR-B1, scavenger receptor class B type I; AS, atherosclerosis.
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Nagai Nori USA INC cd36 co-receptor
(A) <t>ABCA1</t> protein expression in hepatocytes and peritoneal macrophages determined by flow cytometry. (B) SR-B1 protein expression in hepatocytes and peritoneal macrophages determined by flow cytometry. Data are presented as the means ± SEM, (n=6 in each group). # P<0.05, * P<0.01, ## P<0.001, vs. control group; ** P<0.01, *** P<0. 05, **** P<0. 001, vs. AS group (ANOVA). ABCA1, adenosine triphosphate binding <t>cassette</t> <t>transporter</t> A1; SR-B1, scavenger receptor class B type I; AS, atherosclerosis.
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Bioss msr1 polyclonal antibody
(A) <t>ABCA1</t> protein expression in hepatocytes and peritoneal macrophages determined by flow cytometry. (B) SR-B1 protein expression in hepatocytes and peritoneal macrophages determined by flow cytometry. Data are presented as the means ± SEM, (n=6 in each group). # P<0.05, * P<0.01, ## P<0.001, vs. control group; ** P<0.01, *** P<0. 05, **** P<0. 001, vs. AS group (ANOVA). ABCA1, adenosine triphosphate binding <t>cassette</t> <t>transporter</t> A1; SR-B1, scavenger receptor class B type I; AS, atherosclerosis.
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Image Search Results


Preparation and anti‐atherosclerotic mechanisms of the CuPB@HA nanozyme. (A) Synthesis procedure of CuPB@HA. PB nanoparticles were prepared through a PVP/HCl‐assisted thermal reaction using K 3 [Fe(CN) 6 ] as the precursor, followed by Cu incorporation to obtain CuPB and subsequent HA functionalization to form CuPB@HA. (B) Therapeutic mechanisms. Systemically administered CuPB@HA selectively targets lesional CD44 + macrophages. Upon internalization, it synergistically remodels the plaque microenvironment by scavenging ROS to promote a shift toward an anti‐inflammatory macrophage phenotype and improving macrophage lipid‐handling profiles by downregulating CD36 and upregulating ABCA1/ABCG1‐related cholesterol transport mediators, thereby attenuating foam‐cell lipid accumulation. Some elements in the image were sourced from BioRender ( https://app.biorender.com/illustrations/69c95a7d8bdf29a2ebf6bea4 ).

Journal: Advanced Science

Article Title: Copper‐Doped Prussian Blue Nanozymes With Hyaluronic Acid‐Mediated Targeting Alleviate Oxidative Stress and Regulate Cholesterol Handling for Atherosclerosis Therapy

doi: 10.1002/advs.76976

Figure Lengend Snippet: Preparation and anti‐atherosclerotic mechanisms of the CuPB@HA nanozyme. (A) Synthesis procedure of CuPB@HA. PB nanoparticles were prepared through a PVP/HCl‐assisted thermal reaction using K 3 [Fe(CN) 6 ] as the precursor, followed by Cu incorporation to obtain CuPB and subsequent HA functionalization to form CuPB@HA. (B) Therapeutic mechanisms. Systemically administered CuPB@HA selectively targets lesional CD44 + macrophages. Upon internalization, it synergistically remodels the plaque microenvironment by scavenging ROS to promote a shift toward an anti‐inflammatory macrophage phenotype and improving macrophage lipid‐handling profiles by downregulating CD36 and upregulating ABCA1/ABCG1‐related cholesterol transport mediators, thereby attenuating foam‐cell lipid accumulation. Some elements in the image were sourced from BioRender ( https://app.biorender.com/illustrations/69c95a7d8bdf29a2ebf6bea4 ).

Article Snippet: Subsequently, the samples were incubated overnight at 4°C with specific primary antibodies targeting the M1 marker iNOS (Proteintech, 22226‐1‐AP,1:400), the M2 marker ARG1 (Proteintech, 16001‐1‐AP, 1:400), or the lipid uptake receptor CD36 (MedChemExpress, HY‐P86458, 1:400).

Techniques:

Single‐cell transcriptomics identifies CD44 as a potential targeting receptor on pathogenic macrophages in atherosclerotic lesions. (A) UMAP projection of the human carotid plaque single‐cell transcriptomic dataset ( GSE253903 ), illustrating the distinct clustering of major immune and stromal cell lineages. (B) Dot plot depicting the expression profiles of cell‐type‐specific marker genes across all identified clusters. (C) Density Plot showing the high expression of CD44. (D) Violin plots demonstrate significantly elevated CD44 expression in macrophages from symptomatic patients compared to asymptomatic patients. (E) UMAP sub‐clustering of the macrophage population into distinct functional subsets. (F) Bar graph showing an increased proportion of inflammatory macrophages and a decreased proportion of Foamy_Trem2 macrophages in symptomatic lesions. (G) Violin plots detailing the differential expression of CD44 across macrophage subtypes between the two clinical groups. (H) Density Plot illustrating the strong co‐expression of CD44 with pathogenic markers (IL1B, NFE2L2, and CD36).

Journal: Advanced Science

Article Title: Copper‐Doped Prussian Blue Nanozymes With Hyaluronic Acid‐Mediated Targeting Alleviate Oxidative Stress and Regulate Cholesterol Handling for Atherosclerosis Therapy

doi: 10.1002/advs.76976

Figure Lengend Snippet: Single‐cell transcriptomics identifies CD44 as a potential targeting receptor on pathogenic macrophages in atherosclerotic lesions. (A) UMAP projection of the human carotid plaque single‐cell transcriptomic dataset ( GSE253903 ), illustrating the distinct clustering of major immune and stromal cell lineages. (B) Dot plot depicting the expression profiles of cell‐type‐specific marker genes across all identified clusters. (C) Density Plot showing the high expression of CD44. (D) Violin plots demonstrate significantly elevated CD44 expression in macrophages from symptomatic patients compared to asymptomatic patients. (E) UMAP sub‐clustering of the macrophage population into distinct functional subsets. (F) Bar graph showing an increased proportion of inflammatory macrophages and a decreased proportion of Foamy_Trem2 macrophages in symptomatic lesions. (G) Violin plots detailing the differential expression of CD44 across macrophage subtypes between the two clinical groups. (H) Density Plot illustrating the strong co‐expression of CD44 with pathogenic markers (IL1B, NFE2L2, and CD36).

Article Snippet: Subsequently, the samples were incubated overnight at 4°C with specific primary antibodies targeting the M1 marker iNOS (Proteintech, 22226‐1‐AP,1:400), the M2 marker ARG1 (Proteintech, 16001‐1‐AP, 1:400), or the lipid uptake receptor CD36 (MedChemExpress, HY‐P86458, 1:400).

Techniques: Single-cell Transcriptomics, Single Cell, Expressing, Marker, Functional Assay, Quantitative Proteomics

CuPB@HA nanozymes accumulate in atherosclerotic plaques and synergistically remodel lipid metabolism, oxidative stress, and inflammatory polarization in macrophages. (A) Representative in vivo fluorescence images of HFD‐fed ApoE −/− atherosclerotic mice after intravenous administration of Cy5.5‐labeled CuPB or CuPB@HA at 12 and 24 h post‐injection. (B) Ex vivo fluorescence images of major organs, including heart, liver, spleen, lung, and kidney, harvested at corresponding time points after nanozyme administration. (C) Representative confocal fluorescence images of atherosclerotic plaque sections from HFD‐fed ApoE −/− mice showing the spatial association of Cy5.5‐labeled CuPB@HA with CD68‐positive macrophage‐rich regions and CD44‐positive regions. Cy5.5‐labeled CuPB@HA is pseudo‐colored red, CD68 or CD44 is shown in green. (D) Fluorescence microscopy images showing the time‐dependent cellular uptake of FITC‐labeled CuPB and CuPB@HA by macrophages, with or without excess free HA pre‐incubation. FITC‐labeled nanozymes are shown in green, and nuclei are stained with DAPI in blue. (E) Western blot analysis of proteins related to lipid metabolism, oxidative stress, and inflammatory polarization in RAW264.7 macrophages after different treatments. (F) RT‐qPCR analysis of genes related to lipid metabolism, oxidative stress, and inflammatory polarization in RAW264.7 macrophages after different treatments. (G) Representative Oil Red O staining images showing intracellular lipid accumulation in RAW264.7 macrophages after different treatments. (H–J) Representative immunofluorescence images showing the expression of ARG1 (H), iNOS (I), and CD36 (J) in RAW264.7 macrophages after different treatments. (K) Quantitative analysis of cellular uptake fluorescence intensity in Figure 4D. (L) Quantitative analysis of Oil Red O‐positive areas in Figure 4G (n = 3). (M–O) Quantitative fluorescence analysis of ARG1 (M), iNOS (N), and CD36 (O) staining in Figure 4H–J ( n = 5). Quantitative data are presented as the mean ± SD. Statistical significance was assessed via one‐way ANOVA (* p < 0.05, ** p < 0.01, *** p < 0.001, **** p < 0.0001).

Journal: Advanced Science

Article Title: Copper‐Doped Prussian Blue Nanozymes With Hyaluronic Acid‐Mediated Targeting Alleviate Oxidative Stress and Regulate Cholesterol Handling for Atherosclerosis Therapy

doi: 10.1002/advs.76976

Figure Lengend Snippet: CuPB@HA nanozymes accumulate in atherosclerotic plaques and synergistically remodel lipid metabolism, oxidative stress, and inflammatory polarization in macrophages. (A) Representative in vivo fluorescence images of HFD‐fed ApoE −/− atherosclerotic mice after intravenous administration of Cy5.5‐labeled CuPB or CuPB@HA at 12 and 24 h post‐injection. (B) Ex vivo fluorescence images of major organs, including heart, liver, spleen, lung, and kidney, harvested at corresponding time points after nanozyme administration. (C) Representative confocal fluorescence images of atherosclerotic plaque sections from HFD‐fed ApoE −/− mice showing the spatial association of Cy5.5‐labeled CuPB@HA with CD68‐positive macrophage‐rich regions and CD44‐positive regions. Cy5.5‐labeled CuPB@HA is pseudo‐colored red, CD68 or CD44 is shown in green. (D) Fluorescence microscopy images showing the time‐dependent cellular uptake of FITC‐labeled CuPB and CuPB@HA by macrophages, with or without excess free HA pre‐incubation. FITC‐labeled nanozymes are shown in green, and nuclei are stained with DAPI in blue. (E) Western blot analysis of proteins related to lipid metabolism, oxidative stress, and inflammatory polarization in RAW264.7 macrophages after different treatments. (F) RT‐qPCR analysis of genes related to lipid metabolism, oxidative stress, and inflammatory polarization in RAW264.7 macrophages after different treatments. (G) Representative Oil Red O staining images showing intracellular lipid accumulation in RAW264.7 macrophages after different treatments. (H–J) Representative immunofluorescence images showing the expression of ARG1 (H), iNOS (I), and CD36 (J) in RAW264.7 macrophages after different treatments. (K) Quantitative analysis of cellular uptake fluorescence intensity in Figure 4D. (L) Quantitative analysis of Oil Red O‐positive areas in Figure 4G (n = 3). (M–O) Quantitative fluorescence analysis of ARG1 (M), iNOS (N), and CD36 (O) staining in Figure 4H–J ( n = 5). Quantitative data are presented as the mean ± SD. Statistical significance was assessed via one‐way ANOVA (* p < 0.05, ** p < 0.01, *** p < 0.001, **** p < 0.0001).

Article Snippet: Subsequently, the samples were incubated overnight at 4°C with specific primary antibodies targeting the M1 marker iNOS (Proteintech, 22226‐1‐AP,1:400), the M2 marker ARG1 (Proteintech, 16001‐1‐AP, 1:400), or the lipid uptake receptor CD36 (MedChemExpress, HY‐P86458, 1:400).

Techniques: In Vivo, Fluorescence, Labeling, Injection, Ex Vivo, Microscopy, Incubation, Staining, Western Blot, Quantitative RT-PCR, Immunofluorescence, Expressing

Transcriptomic reprogramming of pathogenic macrophages by CuPB@HA nanozymes. (A) Differential expression scatter plot of Model vs. Control, highlighting upregulated DEGs (red, Fold Change > 1.5, FDR < 0.05). (B) GO biological process enrichment of the upregulated DEGs from (A). (C) Differential expression scatter plot of Treat vs. Model, highlighting downregulated DEGs (blue, Fold Change > 1.5, FDR < 0.05). (D) GO biological process enrichment of the downregulated DEGs from (C). (E) Heatmap of representative DEGs for lipid uptake, cholesterol efflux, oxidative stress, and inflammation. (F) Quantitative expression profiles of essential genes selected from (E). Data are mean ± SD ( n = 3). (G) UpSet plot showing the intersection of DEGs between the disease progression and treatment sets. (H) Protein‐protein interaction (PPI) network of the key intersected DEGs. (I) Core PPI sub‐network of highly interconnected hub genes (Cd36, Il1b, Tnf, Il10, Nos2, Arg1, Mmp9).

Journal: Advanced Science

Article Title: Copper‐Doped Prussian Blue Nanozymes With Hyaluronic Acid‐Mediated Targeting Alleviate Oxidative Stress and Regulate Cholesterol Handling for Atherosclerosis Therapy

doi: 10.1002/advs.76976

Figure Lengend Snippet: Transcriptomic reprogramming of pathogenic macrophages by CuPB@HA nanozymes. (A) Differential expression scatter plot of Model vs. Control, highlighting upregulated DEGs (red, Fold Change > 1.5, FDR < 0.05). (B) GO biological process enrichment of the upregulated DEGs from (A). (C) Differential expression scatter plot of Treat vs. Model, highlighting downregulated DEGs (blue, Fold Change > 1.5, FDR < 0.05). (D) GO biological process enrichment of the downregulated DEGs from (C). (E) Heatmap of representative DEGs for lipid uptake, cholesterol efflux, oxidative stress, and inflammation. (F) Quantitative expression profiles of essential genes selected from (E). Data are mean ± SD ( n = 3). (G) UpSet plot showing the intersection of DEGs between the disease progression and treatment sets. (H) Protein‐protein interaction (PPI) network of the key intersected DEGs. (I) Core PPI sub‐network of highly interconnected hub genes (Cd36, Il1b, Tnf, Il10, Nos2, Arg1, Mmp9).

Article Snippet: Subsequently, the samples were incubated overnight at 4°C with specific primary antibodies targeting the M1 marker iNOS (Proteintech, 22226‐1‐AP,1:400), the M2 marker ARG1 (Proteintech, 16001‐1‐AP, 1:400), or the lipid uptake receptor CD36 (MedChemExpress, HY‐P86458, 1:400).

Techniques: Quantitative Proteomics, Control, Expressing, Biomarker Discovery

CuPB@HA attenuates atherosclerotic plaque burden and promotes plaque stability in HFD‐fed ApoE −/− mice. (A) Schematic of the in vivo experimental design and treatment timeline. (B–E) Serum lipid profiles of mice in different treatment groups, including (B) total cholesterol (TC), (C) triglycerides (TG), (D) low‐density lipoprotein cholesterol (LDL‐C), and (E) high‐density lipoprotein cholesterol (HDL‐C). Data are mean ± SD ( n = 6). Significance was assessed via one‐way ANOVA with Tukey's post hoc test (* p < 0.05, ** p < 0.01, *** p < 0.001, **** p < 0.0001). (F–J) Representative histological and immunohistochemical images of aortic root cross‐sections (scale bars: 100 µm): (F) Representative Oil Red O (ORO) staining of aortas. (G) ORO staining for lipid accumulation; (H) H&E staining for necrotic core and plaque morphology; (I) Masson's trichrome staining for collagen deposition; and (J) IHC staining for CD36 expression. (K–O) Quantification of lesional characteristics across treatment groups: (K) relative plaque area ( en face ORO), (L) lipid area (aortic root ORO), (M) necrotic core area (H&E), (N) collagen‐to‐plaque ratio (Masson's trichrome), and (O) CD36‐positive area (IHC). Data are presented as the mean ± SD ( n = 6). Significance was assessed via one‐way ANOVA with Tukey's post hoc test (* p < 0.05, ** p < 0.01, *** p < 0.001, **** p < 0.0001).

Journal: Advanced Science

Article Title: Copper‐Doped Prussian Blue Nanozymes With Hyaluronic Acid‐Mediated Targeting Alleviate Oxidative Stress and Regulate Cholesterol Handling for Atherosclerosis Therapy

doi: 10.1002/advs.76976

Figure Lengend Snippet: CuPB@HA attenuates atherosclerotic plaque burden and promotes plaque stability in HFD‐fed ApoE −/− mice. (A) Schematic of the in vivo experimental design and treatment timeline. (B–E) Serum lipid profiles of mice in different treatment groups, including (B) total cholesterol (TC), (C) triglycerides (TG), (D) low‐density lipoprotein cholesterol (LDL‐C), and (E) high‐density lipoprotein cholesterol (HDL‐C). Data are mean ± SD ( n = 6). Significance was assessed via one‐way ANOVA with Tukey's post hoc test (* p < 0.05, ** p < 0.01, *** p < 0.001, **** p < 0.0001). (F–J) Representative histological and immunohistochemical images of aortic root cross‐sections (scale bars: 100 µm): (F) Representative Oil Red O (ORO) staining of aortas. (G) ORO staining for lipid accumulation; (H) H&E staining for necrotic core and plaque morphology; (I) Masson's trichrome staining for collagen deposition; and (J) IHC staining for CD36 expression. (K–O) Quantification of lesional characteristics across treatment groups: (K) relative plaque area ( en face ORO), (L) lipid area (aortic root ORO), (M) necrotic core area (H&E), (N) collagen‐to‐plaque ratio (Masson's trichrome), and (O) CD36‐positive area (IHC). Data are presented as the mean ± SD ( n = 6). Significance was assessed via one‐way ANOVA with Tukey's post hoc test (* p < 0.05, ** p < 0.01, *** p < 0.001, **** p < 0.0001).

Article Snippet: Subsequently, the samples were incubated overnight at 4°C with specific primary antibodies targeting the M1 marker iNOS (Proteintech, 22226‐1‐AP,1:400), the M2 marker ARG1 (Proteintech, 16001‐1‐AP, 1:400), or the lipid uptake receptor CD36 (MedChemExpress, HY‐P86458, 1:400).

Techniques: In Vivo, Immunohistochemical staining, Staining, Immunohistochemistry, Expressing

Comparison of mRNA expression in paranasal sinus mucosa from the controls, and CRSsNP and CRSwNP patients as detected by RT-PCR. ( a ) scavenger receptor class B type 1 (SR-B1) and ( b ) lectin-like oxidized LDL receptor-1 (LOX-1) mRNA levels were quantitatively normalized to the glyceraldehyde 3-phosphate dehydrogenase (GAPDH) mRNA levels. Center lines: median values. Boxes: interquartile ranges. Error bars: overall ranges. NS: not significant.

Journal: Diagnostics

Article Title: Increased Tissue Expression of Lectin-Like Oxidized LDL Receptor-1 (LOX-1) Is Associated with Disease Severity in Chronic Rhinosinusitis with Nasal Polyps

doi: 10.3390/diagnostics10040246

Figure Lengend Snippet: Comparison of mRNA expression in paranasal sinus mucosa from the controls, and CRSsNP and CRSwNP patients as detected by RT-PCR. ( a ) scavenger receptor class B type 1 (SR-B1) and ( b ) lectin-like oxidized LDL receptor-1 (LOX-1) mRNA levels were quantitatively normalized to the glyceraldehyde 3-phosphate dehydrogenase (GAPDH) mRNA levels. Center lines: median values. Boxes: interquartile ranges. Error bars: overall ranges. NS: not significant.

Article Snippet: The primary antibodies used were antihuman SR-B1 rabbit polyclonal antibody (#5193; ProSci, Poway, CA, USA), antihuman LOX-1 rabbit polyclonal antibody (#11837-1-AP; Proteintech, Rosemont, IL, USA), and antihuman CD68 mouse monoclonal antibody (#M0814; Dako, Glostrup, Denmark).

Techniques: Comparison, Expressing, Reverse Transcription Polymerase Chain Reaction

Correlation between the severity of computed tomography (CT) findings and mRNA expression levels for ( a ) SR-B1 and ( b ) LOX-1 in sinus mucosa.

Journal: Diagnostics

Article Title: Increased Tissue Expression of Lectin-Like Oxidized LDL Receptor-1 (LOX-1) Is Associated with Disease Severity in Chronic Rhinosinusitis with Nasal Polyps

doi: 10.3390/diagnostics10040246

Figure Lengend Snippet: Correlation between the severity of computed tomography (CT) findings and mRNA expression levels for ( a ) SR-B1 and ( b ) LOX-1 in sinus mucosa.

Article Snippet: The primary antibodies used were antihuman SR-B1 rabbit polyclonal antibody (#5193; ProSci, Poway, CA, USA), antihuman LOX-1 rabbit polyclonal antibody (#11837-1-AP; Proteintech, Rosemont, IL, USA), and antihuman CD68 mouse monoclonal antibody (#M0814; Dako, Glostrup, Denmark).

Techniques: Computed Tomography, Expressing

Representative immunohistological images showing SR-B1 ( a , b ), LOX-1 ( c , d ), and CD68 ( e , f ) expression in ethmoid sinus mucosa sampled from a CRSwNP patient. Vascular endothelial cells (arrowheads) are stained positively both for SR-B1 and LOX-1. In contrast, numerous submucosal inflammatory cells show intense positive staining for LOX-1 compared to that for SR-B1. Scale bar: 20 μm.

Journal: Diagnostics

Article Title: Increased Tissue Expression of Lectin-Like Oxidized LDL Receptor-1 (LOX-1) Is Associated with Disease Severity in Chronic Rhinosinusitis with Nasal Polyps

doi: 10.3390/diagnostics10040246

Figure Lengend Snippet: Representative immunohistological images showing SR-B1 ( a , b ), LOX-1 ( c , d ), and CD68 ( e , f ) expression in ethmoid sinus mucosa sampled from a CRSwNP patient. Vascular endothelial cells (arrowheads) are stained positively both for SR-B1 and LOX-1. In contrast, numerous submucosal inflammatory cells show intense positive staining for LOX-1 compared to that for SR-B1. Scale bar: 20 μm.

Article Snippet: The primary antibodies used were antihuman SR-B1 rabbit polyclonal antibody (#5193; ProSci, Poway, CA, USA), antihuman LOX-1 rabbit polyclonal antibody (#11837-1-AP; Proteintech, Rosemont, IL, USA), and antihuman CD68 mouse monoclonal antibody (#M0814; Dako, Glostrup, Denmark).

Techniques: Expressing, Staining

(A) ABCA1 protein expression in hepatocytes and peritoneal macrophages determined by flow cytometry. (B) SR-B1 protein expression in hepatocytes and peritoneal macrophages determined by flow cytometry. Data are presented as the means ± SEM, (n=6 in each group). # P<0.05, * P<0.01, ## P<0.001, vs. control group; ** P<0.01, *** P<0. 05, **** P<0. 001, vs. AS group (ANOVA). ABCA1, adenosine triphosphate binding cassette transporter A1; SR-B1, scavenger receptor class B type I; AS, atherosclerosis.

Journal: International Journal of Molecular Medicine

Article Title: Rosiglitazone attenuates atherosclerosis and increases high-density lipoprotein function in atherosclerotic rabbits

doi: 10.3892/ijmm.2015.2072

Figure Lengend Snippet: (A) ABCA1 protein expression in hepatocytes and peritoneal macrophages determined by flow cytometry. (B) SR-B1 protein expression in hepatocytes and peritoneal macrophages determined by flow cytometry. Data are presented as the means ± SEM, (n=6 in each group). # P<0.05, * P<0.01, ## P<0.001, vs. control group; ** P<0.01, *** P<0. 05, **** P<0. 001, vs. AS group (ANOVA). ABCA1, adenosine triphosphate binding cassette transporter A1; SR-B1, scavenger receptor class B type I; AS, atherosclerosis.

Article Snippet: Immunostaining for ABCA1 (Boster Biotechnology Co. Ltd., Wuhan, China) and SR-BI (Abcam Co. Ltd., Cambridge, MA, USA) was performed on paraffin-embedded aortic atherosclerotic sections using the specific antibody and a streptavidin-biotin peroxidase-complex (SABC).

Techniques: Expressing, Flow Cytometry, Control, Binding Assay

(A) Hepatocyte ABCA1 mRNA expression quantified by RT-qPCR. (B) Hepatocyte SR-B1 mRNA expression quantified by RT-qPCR. Data are presented as the means ± SEM, (n=6 in each group). * P<0.01 vs. control group; ** P<0.01 vs. AS group (ANOVA). ABCA1, adenosine triphosphate binding cassette transporter A1; SR-B1, scavenger receptor class B type I; AS, atherosclerosis.

Journal: International Journal of Molecular Medicine

Article Title: Rosiglitazone attenuates atherosclerosis and increases high-density lipoprotein function in atherosclerotic rabbits

doi: 10.3892/ijmm.2015.2072

Figure Lengend Snippet: (A) Hepatocyte ABCA1 mRNA expression quantified by RT-qPCR. (B) Hepatocyte SR-B1 mRNA expression quantified by RT-qPCR. Data are presented as the means ± SEM, (n=6 in each group). * P<0.01 vs. control group; ** P<0.01 vs. AS group (ANOVA). ABCA1, adenosine triphosphate binding cassette transporter A1; SR-B1, scavenger receptor class B type I; AS, atherosclerosis.

Article Snippet: Immunostaining for ABCA1 (Boster Biotechnology Co. Ltd., Wuhan, China) and SR-BI (Abcam Co. Ltd., Cambridge, MA, USA) was performed on paraffin-embedded aortic atherosclerotic sections using the specific antibody and a streptavidin-biotin peroxidase-complex (SABC).

Techniques: Expressing, Quantitative RT-PCR, Control, Binding Assay

Aortic sections were subjected to immunohistochemical staining for ABCA1 protein localization. Representative images captured at magnification, ×40, ×100 and ×200. ABCA1, adenosine triphosphate binding cassette transporter A1; AS, atherosclerosis.

Journal: International Journal of Molecular Medicine

Article Title: Rosiglitazone attenuates atherosclerosis and increases high-density lipoprotein function in atherosclerotic rabbits

doi: 10.3892/ijmm.2015.2072

Figure Lengend Snippet: Aortic sections were subjected to immunohistochemical staining for ABCA1 protein localization. Representative images captured at magnification, ×40, ×100 and ×200. ABCA1, adenosine triphosphate binding cassette transporter A1; AS, atherosclerosis.

Article Snippet: Immunostaining for ABCA1 (Boster Biotechnology Co. Ltd., Wuhan, China) and SR-BI (Abcam Co. Ltd., Cambridge, MA, USA) was performed on paraffin-embedded aortic atherosclerotic sections using the specific antibody and a streptavidin-biotin peroxidase-complex (SABC).

Techniques: Immunohistochemical staining, Staining, Binding Assay

Quantification of immunohistochemical staining  for ABCA1  expression in aortic atherosclerotic lesions among the control, atherosclerotic and rosiglitazone groups at 12 weeks.

Journal: International Journal of Molecular Medicine

Article Title: Rosiglitazone attenuates atherosclerosis and increases high-density lipoprotein function in atherosclerotic rabbits

doi: 10.3892/ijmm.2015.2072

Figure Lengend Snippet: Quantification of immunohistochemical staining for ABCA1 expression in aortic atherosclerotic lesions among the control, atherosclerotic and rosiglitazone groups at 12 weeks.

Article Snippet: Immunostaining for ABCA1 (Boster Biotechnology Co. Ltd., Wuhan, China) and SR-BI (Abcam Co. Ltd., Cambridge, MA, USA) was performed on paraffin-embedded aortic atherosclerotic sections using the specific antibody and a streptavidin-biotin peroxidase-complex (SABC).

Techniques: Immunohistochemical staining, Staining, Expressing, Control